Literature DB >> 20432353

Modified brix model analysis of bone perfusion in subjects of varying bone mineral density.

Heather Ting Ma1, James F Griffith, David K Yeung, P C Leung.   

Abstract

PURPOSE: To apply pharmacokinetic modeling to the investigation of bone perfusion in subjects of varying bone mineral density.
MATERIALS AND METHODS: This study re-analyzed previous experimental data. A modified pharmacokinetic model was applied to data obtained from two prior studies of dynamic contrast-enhanced MR imaging of L3 vertebral body in 165 subjects (65 males, 100 females), classified into three groups (normal, osteopenia, and osteoporosis) according to bone mineral density. Three parameters, amplitude A, exchange rate (k(ep)), and elimination rate (k(el)), were obtained by fitting the signal intensity to the pharmacokinetic model. These parameters were compared across the three groups for males and females, respectively.
RESULTS: Perfusion parameters, amplitude A was found to be reduced in osteoporotic subjects with additional, though less pronounced, reductions found in the permeability constant (A*k(ep)) and the elimination rate (k(el)). Increased marrow fat content was found in osteoporotic bone, which helped to partially explain the observed reduction in interstitial space.
CONCLUSION: By pharmacokinetic model, bone perfusion can be quantitatively analyzed with alteration in functional parameters related to microcirculation in subjects of varying bone mineral density. Developing bone marrow specific pharmacokinetic models should help to deepen knowledge of physiological and pathological perfusion changes occurring in bone. Copyright 2010 Wiley-Liss, Inc.

Entities:  

Mesh:

Year:  2010        PMID: 20432353     DOI: 10.1002/jmri.22164

Source DB:  PubMed          Journal:  J Magn Reson Imaging        ISSN: 1053-1807            Impact factor:   4.813


  12 in total

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9.  Muscle-based pharmacokinetic modeling of marrow perfusion for osteoporotic bone in females.

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10.  Influence of B1-Inhomogeneity on Pharmacokinetic Modeling of Dynamic Contrast-Enhanced MRI: A Simulation Study.

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